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Thermodynamic properties and crystallization kinetics of glass-forming undercooled liquid Au-Pb-Sb alloys

机译:玻璃形成过冷液态Au-Pb-Sb合金的热力学性质和结晶动力学

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摘要

The heat capacities of liquid and crystalline Au-Pb-Sb alloys in the glass-forming composition range were measured with droplet emulsion and bulk samples. Based on the measured Cp data, the entropy, enthalpy, and Gibbs free-energy differences between the eutectic solid mixture and undercooled liquid were determined as a function of temperature over ~60% of the undercooling range below the liquidus temperature and compared with theoretical predictions. The results indicate an isentropic temperature at 313 (±5) K, which agrees well with experimental data for the glass transition. The thermodynamic evaluation was applied further to develop a kinetics analysis of the nucleation undercooling response during cooling. Use of different approximations for the Gibbs free energy leads to a variation of the prefactor terms of six orders of magnitude for classical nucleation theory and, consequently, large variation in calculated transformation diagrams which is more pronounced with increasing undercooling. Extrapolations into the glass-forming temperature range and the effects of viscosity, transient nucleation, and estimated Kauzmann temperatures on the crystallization kinetics at high undercooling have been evaluated. This analysis reveals the importance of using measured values of thermophysical properties, even if they represent a limited temperature range at modest undercooling, rather than model approximations in order to obtain reliable evaluations of crystallization kinetics at high undercooling in the glass-forming temperature range.
机译:用液滴乳液和块状样品测量在玻璃形成组成范围内的液态和晶体Au-Pb-Sb合金的热容量。根据测得的Cp数据,确定了共晶固体混合物和过冷液体之间的熵,焓和吉布斯自由能差异是液相线温度以下约60%的过冷范围温度的函数,并与理论预测值进行了比较。结果表明等熵温度为313(±5)K,与玻璃化转变的实验数据吻合良好。进一步应用热力学评估,以开发冷却过程中成核过冷响应的动力学分析。对于吉布斯自由能使用不同的近似值会导致经典成核理论的预因子项发生六个数量级的变化,因此,计算出的变换图中存在较大的变化,随着过冷度的增加,变化会更加明显。已评估了玻璃形成温度范围的外推以及粘度,瞬时成核作用和估计的考兹曼温度对高过冷度下结晶动力学的影响。该分析揭示了使用热物理性质的测量值的重要性,即使它们代表的是适度过冷条件下的有限温度范围,也并非模型近似值,以便在玻璃成型温度范围内的高过冷度下获得可靠的结晶动力学评估。

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